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  <front>
    <journal-meta>
      <journal-id journal-id-type="issn">2411-3336</journal-id>
      <journal-id journal-id-type="eissn">2541-9404</journal-id>
      <journal-title-group>
        <journal-title xml:lang="ru">Записки Горного института</journal-title>
        <journal-title xml:lang="en">Journal of Mining Institute</journal-title>
      </journal-title-group>
      <publisher>
        <publisher-name xml:lang="ru">Санкт-Петербургский горный университет императрицы Екатерины ΙΙ</publisher-name>
        <publisher-name xml:lang="en">Empress Catherine II Saint Petersburg Mining University</publisher-name>
      </publisher>
    </journal-meta>
    <article-meta>
      <article-id custom-type="edn" pub-id-type="custom">RSOAKK</article-id>
      <article-id custom-type="pmi" pub-id-type="custom">pmi-15984</article-id>
      <article-id pub-id-type="uri">https://pmi.spmi.ru/pmi/article/view/15984</article-id>
      <article-categories>
        <subj-group subj-group-type="section-heading" xml:lang="ru">
          <subject>Геотехнология и инженерная геология</subject>
        </subj-group>
        <subj-group subj-group-type="section-heading" xml:lang="en">
          <subject>Geotechnical Engineering and Engineering Geology</subject>
        </subj-group>
      </article-categories>
      <title-group>
        <article-title xml:lang="en">Carbon dioxide corrosion inhibitors: current state of research and development</article-title>
        <trans-title-group xml:lang="ru">
          <trans-title>Ингибиторы углекислотной коррозии: современное состояние исследований и разработок</trans-title>
        </trans-title-group>
      </title-group>
      <contrib-group>
        <contrib contrib-type="author" corresp="yes">
          <name name-style="eastern">
            <surname>Chudakova</surname>
            <given-names>Mariya V.</given-names>
          </name>
          <name-alternatives>
            <name name-style="eastern" xml:lang="ru">
              <surname>Чудакова</surname>
              <given-names>М. В.</given-names>
            </name>
            <name name-style="western" xml:lang="en">
              <surname>Chudakova</surname>
              <given-names>Mariya V.</given-names>
            </name>
          </name-alternatives>
          <email>Chudakova.MV@gazprom-neft.ru</email>
          <contrib-id contrib-id-type="orcid">0000-0001-9211-9970</contrib-id>
          <xref ref-type="aff" rid="aff1"/>
        </contrib>
        <aff-alternatives id="aff1">
          <aff>
            <institution xml:lang="ru">ПАО «Газпром нефть» (Санкт-Петербург, Россия)</institution>
          </aff>
          <aff>
            <institution xml:lang="en">PAO Gazprom Neft (Saint  Petersburg, Russia)</institution>
          </aff>
        </aff-alternatives>
        <contrib contrib-type="author">
          <name name-style="eastern">
            <surname>Ovchinnikov</surname>
            <given-names>Kirill A.</given-names>
          </name>
          <name-alternatives>
            <name name-style="eastern" xml:lang="ru">
              <surname>Овчинников</surname>
              <given-names>К. А.</given-names>
            </name>
            <name name-style="western" xml:lang="en">
              <surname>Ovchinnikov</surname>
              <given-names>Kirill A.</given-names>
            </name>
          </name-alternatives>
          <email>Ovchinnikov.KA@gazprom-neft.ru</email>
          <contrib-id contrib-id-type="orcid">0000-0002-9298-3475</contrib-id>
          <xref ref-type="aff" rid="aff2"/>
        </contrib>
        <aff-alternatives id="aff2">
          <aff>
            <institution xml:lang="ru">Российский университет дружбы народов имени Патриса Лумумбы (Москва, Россия)</institution>
          </aff>
          <aff>
            <institution xml:lang="en">Peoples’s Friendship University of Russia named after Patrice Lumumba (Moscow, Russia)</institution>
          </aff>
        </aff-alternatives>
        <contrib contrib-type="author">
          <name name-style="eastern">
            <surname>Ulyanov</surname>
            <given-names>Dmitrii N.</given-names>
          </name>
          <name-alternatives>
            <name name-style="eastern" xml:lang="ru">
              <surname>Ульянов</surname>
              <given-names>Д. Н.</given-names>
            </name>
            <name name-style="western" xml:lang="en">
              <surname>Ulyanov</surname>
              <given-names>Dmitrii N.</given-names>
            </name>
          </name-alternatives>
          <email>Ulyanov.DN@gazprom-neft.ru</email>
          <contrib-id contrib-id-type="orcid">0000-0002-3995-3605</contrib-id>
          <xref ref-type="aff" rid="aff3"/>
        </contrib>
        <aff-alternatives id="aff3">
          <aff>
            <institution xml:lang="ru">ПАО «Газпром нефть» (Санкт-Петербург, Россия)</institution>
          </aff>
          <aff>
            <institution xml:lang="en">PAO Gazprom Neft (Saint  Petersburg, Russia)</institution>
          </aff>
        </aff-alternatives>
        <contrib contrib-type="author">
          <name name-style="eastern">
            <surname>Kunakova</surname>
            <given-names>Anisa M.</given-names>
          </name>
          <name-alternatives>
            <name name-style="eastern" xml:lang="ru">
              <surname>Кунакова</surname>
              <given-names>А. М.</given-names>
            </name>
            <name name-style="western" xml:lang="en">
              <surname>Kunakova</surname>
              <given-names>Anisa M.</given-names>
            </name>
          </name-alternatives>
          <email>Kunakova.AM@gazprom-neft.ru</email>
          <contrib-id contrib-id-type="orcid">0000-0003-4311-5273</contrib-id>
          <xref ref-type="aff" rid="aff4"/>
        </contrib>
        <aff-alternatives id="aff4">
          <aff>
            <institution xml:lang="ru">Газпромнефть НТЦ (Санкт-Петербург, Россия)</institution>
          </aff>
          <aff>
            <institution xml:lang="en">Gazprom Neft Scientific and Technical Center (Saint  Petersburg, Russia)</institution>
          </aff>
        </aff-alternatives>
        <contrib contrib-type="author">
          <name name-style="eastern">
            <surname>Saifutdinova</surname>
            <given-names>Liniza R.</given-names>
          </name>
          <name-alternatives>
            <name name-style="eastern" xml:lang="ru">
              <surname>Сайфутдинова</surname>
              <given-names>Л. Р.</given-names>
            </name>
            <name name-style="western" xml:lang="en">
              <surname>Saifutdinova</surname>
              <given-names>Liniza R.</given-names>
            </name>
          </name-alternatives>
          <email>Sayfutdinova.LR@gazprom-neft.ru</email>
          <contrib-id contrib-id-type="orcid">0000-0002-9062-4794</contrib-id>
          <xref ref-type="aff" rid="aff5"/>
        </contrib>
        <aff-alternatives id="aff5">
          <aff>
            <institution xml:lang="ru">ООО «ГЦСС «Нефтепромхим» (Казань, Россия)</institution>
          </aff>
          <aff>
            <institution xml:lang="en">GCSS Neftepromhim LLC (Kazan, Russia)</institution>
          </aff>
        </aff-alternatives>
        <contrib contrib-type="author">
          <name name-style="eastern">
            <surname>Pimenov</surname>
            <given-names>Andrei A.</given-names>
          </name>
          <name-alternatives>
            <name name-style="eastern" xml:lang="ru">
              <surname>Пименов</surname>
              <given-names>А. А.</given-names>
            </name>
            <name name-style="western" xml:lang="en">
              <surname>Pimenov</surname>
              <given-names>Andrei A.</given-names>
            </name>
          </name-alternatives>
          <email>Pimenov.AA@gazprom-neft.ru</email>
          <contrib-id contrib-id-type="orcid">0000-0001-8923-2550</contrib-id>
          <xref ref-type="aff" rid="aff6"/>
        </contrib>
        <aff-alternatives id="aff6">
          <aff>
            <institution xml:lang="ru">Институт «ТатНИПИнефть» ПАО «Татнефть» им. В.Д.Шашина (Альметьевск, Россия)</institution>
          </aff>
          <aff>
            <institution xml:lang="en">Tatar Oil Research and Design Institute (TatNIPIneft) of PJSC TATNEFT (Almetyevsk, Russia)</institution>
          </aff>
        </aff-alternatives>
        <contrib contrib-type="author">
          <name name-style="eastern">
            <surname>Maximov</surname>
            <given-names>Anton L.</given-names>
          </name>
          <name-alternatives>
            <name name-style="eastern" xml:lang="ru">
              <surname>Максимов</surname>
              <given-names>А. Л.</given-names>
            </name>
            <name name-style="western" xml:lang="en">
              <surname>Maximov</surname>
              <given-names>Anton L.</given-names>
            </name>
          </name-alternatives>
          <email>max@ips.as.ru</email>
          <contrib-id contrib-id-type="orcid">0000-0001-9297-4950</contrib-id>
          <xref ref-type="aff" rid="aff7"/>
        </contrib>
        <aff-alternatives id="aff7">
          <aff>
            <institution xml:lang="ru">Институт нефтехимического синтеза им. А.В.Топчиева РАН (Москва, Россия)</institution>
          </aff>
          <aff>
            <institution xml:lang="en">A.V.Topchiev Institute of Petrochemical Synthesis, RAS (Moscow, Russia)</institution>
          </aff>
        </aff-alternatives>
      </contrib-group>
      <pub-date pub-type="epub" iso-8601-date="2025-02-25">
        <day>25</day>
        <month>02</month>
        <year>2025</year>
      </pub-date>
      <pub-date date-type="collection">
        <year>2025</year>
      </pub-date>
      <volume>271</volume>
      <fpage>3</fpage>
      <lpage>21</lpage>
      <history>
        <date date-type="received" iso-8601-date="2022-09-30">
          <day>30</day>
          <month>09</month>
          <year>2022</year>
        </date>
        <date date-type="accepted" iso-8601-date="2024-11-07">
          <day>07</day>
          <month>11</month>
          <year>2024</year>
        </date>
        <date date-type="rev-recd" iso-8601-date="2025-02-25">
          <day>25</day>
          <month>02</month>
          <year>2025</year>
        </date>
      </history>
      <permissions>
        <copyright-statement xml:lang="ru">© 2025 М. В. Чудакова, К. А. Овчинников, Д. Н. Ульянов, А. М. Кунакова, Л. Р. Сайфутдинова, А. А. Пименов, А. Л. Максимов</copyright-statement>
        <copyright-statement xml:lang="en">© 2025 Mariya V. Chudakova, Kirill A. Ovchinnikov, Dmitrii N. Ulyanov, Anisa M. Kunakova, Liniza R. Saifutdinova, Andrei A. Pimenov, Anton L. Maximov</copyright-statement>
        <copyright-year>2025</copyright-year>
        <copyright-holder xml:lang="ru">М. В. Чудакова, К. А. Овчинников, Д. Н. Ульянов, А. М. Кунакова, Л. Р. Сайфутдинова, А. А. Пименов, А. Л. Максимов</copyright-holder>
        <copyright-holder xml:lang="en">Mariya V. Chudakova, Kirill A. Ovchinnikov, Dmitrii N. Ulyanov, Anisa M. Kunakova, Liniza R. Saifutdinova, Andrei A. Pimenov, Anton L. Maximov</copyright-holder>
        <license license-type="open-access" xlink:href="http://creativecommons.org/licenses/by/4.0" xml:lang="ru">
          <license-p>Эта статья доступна по лицензии Creative Commons Attribution 4.0 International (CC BY 4.0)</license-p>
        </license>
        <license license-type="open-access" xlink:href="http://creativecommons.org/licenses/by/4.0" xml:lang="en">
          <license-p>This article is licensed under a Creative Commons Attribution 4.0 International License (CC BY 4.0)</license-p>
        </license>
      </permissions>
      <self-uri xlink:type="simple" xlink:href="https://pmi.spmi.ru/pmi/article/view/15984">https://pmi.spmi.ru/pmi/article/view/15984</self-uri>
      <abstract xml:lang="ru">
        <p>Среди методов борьбы с коррозией в нефтегазодобывающей промышленности ведущее место принадлежит ингибиторной защите, поскольку отсутствует необходимость технологических и технических изменений существующего оборудования. Сочетание высокой вариативности состава ингибитора с изменением условий применения и низких капитальных вложений делает его незаменимым реагентом на нефтяных и газовых месторождениях. Описаны основные классы соединений, которые используются в качестве активных основ ингибиторов углекислотной коррозии для защиты нефтегазового оборудования. Рассмотрены классические органические активные основы, содержащие гетероатомы (кислород, сера, азот). Особое внимание уделено алкилимидазолинам и другим азотсодержащим соединениям как наиболее часто используемым в качестве активных основ ингибиторов углекислотной коррозии в России и за рубежом. Продемонстрированы широкие возможности достижения требуемых свойств ингибиторов коррозии путем варьирования заместителей. В настоящее время помимо традиционных требований к ингибиторам коррозии не менее важной является их безопасность для окружающей среды. Приведены сведения о перспективных исследованиях и разработках, направленных на улучшение экологических характеристик используемых реагентов. Рассмотрены растительные экстракты, синтетические и биологические полимеры, вовлекаемые в состав традиционных ингибиторов коррозии или используемые в качестве новых самостоятельных составов. Показано, что эффективность ингибиторов коррозии значительно зависит от рН среды, температуры, парциального давления СО2, скорости потока и других факторов.</p>
      </abstract>
      <abstract xml:lang="en">
        <p>Among the methods of corrosion control in the oil and gas production industry the leading place belongs to inhibitor protection, since there is no need for technological and technical changes in the existing equipment. The combination of high variability of inhibitor composition with changing conditions of its application and low capital investments makes it an indispensable reagent at oil and gas fields. The main classes of compounds used as active bases of carbonic acid corrosion inhibitors for the protection of oil and gas equipment are described. Classical organic active bases containing heteroatoms (oxygen, sulfur, nitrogen) are examined. Special attention was paid to alkylimidazolines and other nitrogen-containing compounds as the most frequently used as active bases of carbonic acid corrosion inhibitors in Russia and abroad. A wide range of possibilities to achieve the desired properties of corrosion inhibitors by varying the substitutes has been demonstrated. Nowadays, in addition to the traditional requirements for corrosion inhibitors, their safety for the environment is equally important. The information on prospective research and development aimed at improving the environmental characteristics of the reagents used is given. Plant extracts, synthetic and biological polymers involved in traditional corrosion inhibitors or used as new independent compounds are considered. It is shown that the effectiveness of corrosion inhibitors significantly depends on the pH of the medium, temperature, partial pressure of СО2, flow rate, and other factors.</p>
      </abstract>
      <kwd-group xml:lang="ru">
        <title>Ключевые слова</title>
        <kwd>ингибитор коррозии</kwd>
        <kwd>углекислотная коррозия</kwd>
        <kwd>имидазолин</kwd>
        <kwd>СО2</kwd>
        <kwd>зеленые ингибиторы</kwd>
        <kwd>растительные ингибиторы</kwd>
        <kwd>полимерные ингибиторы</kwd>
        <kwd>синтетические полимеры</kwd>
        <kwd>биополимеры</kwd>
      </kwd-group>
      <kwd-group xml:lang="en">
        <title>Keywords</title>
        <kwd>corrosion inhibitor</kwd>
        <kwd>carbonic acid corrosion</kwd>
        <kwd>imidazoline</kwd>
        <kwd>СО2</kwd>
        <kwd>green inhibitors</kwd>
        <kwd>plant inhibitors</kwd>
        <kwd>polymeric inhibitors</kwd>
        <kwd>synthetic polymers</kwd>
        <kwd>biopolymers</kwd>
      </kwd-group>
    </article-meta>
  </front>
  <body/>
  <back>
    <ref-list>
      <ref id="ref1">
        <label>1</label>
        <mixed-citation xml:lang="ru">Ormellese M. Corrosion in Oil and Chemical Industry // Encyclopedia of Interfacial Chemistry: Surface Science and Electrochemistry. Elsevier, 2018. Vol. 6.1: Corrosion and Passivation. P. 145-154. DOI: 10.1016/B978-0-12-409547-2.13434-1</mixed-citation>
        <mixed-citation xml:lang="en">Ormellese M. Corrosion in Oil and Chemical Industry. Encyclopedia of Interfacial Chemistry: Surface Science and Electrochemistry. Elsevier, 2018. Vol. 6.1: Corrosion and Passivation, p. 145-154. DOI: 10.1016/B978-0-12-409547-2.13434-1</mixed-citation>
      </ref>
      <ref id="ref2">
        <label>2</label>
        <mixed-citation xml:lang="ru">Корякин А.Ю., Кобычев В.Ф., Колинченко И.В., Юсупов А.Д. Условия протекания углекислотной коррозии на объектах добычи ачимовских отложений, методы контроля и прогнозирования // Газовая промышленность. 2017. № 12. С. 84-89.</mixed-citation>
        <mixed-citation xml:lang="en">Koryakin A.Yu., Kobychev V.F., Kolinchenko I.V., Yusupov A.D. Conditions of the carbon dioxide corrosion on the production facilities of Achimovskie deposits, methods of monitoring and forecasting. Gas Industry. 2017. N 12, p. 84-89 (in Russian).</mixed-citation>
      </ref>
      <ref id="ref3">
        <label>3</label>
        <mixed-citation xml:lang="ru">Kasyanov A.V., Belousov A.E., Popov G.G., Bolobov V.I. Determination of factors affecting on grooving corrosion // Topical Issues of Rational Use of Natural Resources. CRC Press. 2019. Vol. 1. P. 393-399. DOI: 10.1201/9781003014577-49</mixed-citation>
        <mixed-citation xml:lang="en">Kasyanov A.V., Belousov A.E., Popov G.G., Bolobov V.I. Determination of factors affecting on grooving corrosion. Topical Issues of Rational Use of Natural Resources. CRC Press. 2019. Vol. 1, p. 393-399. DOI: 10.1201/9781003014577-49</mixed-citation>
      </ref>
      <ref id="ref4">
        <label>4</label>
        <mixed-citation xml:lang="ru">Кантюков Р.Р., Запевалов Д.Н., Вагапов Р.К. Анализ применения и воздействия углекислотных сред на коррозионное состояние нефтегазовых объектов // Записки Горного института. 2021. Т. 250. С. 578-586. DOI: 10.31897/PMI.2021.4.11</mixed-citation>
        <mixed-citation xml:lang="en">Kantyukov R.R., Zapevalov D.N., Vagapov R.K. Analysis of the application and impact of carbon dioxide media on the corrosion state of oil and gas facilities. Journal of Mining Institute. 2021. Vol. 250, p. 578-586. DOI: 10.31897/PMI.2021.4.11</mixed-citation>
      </ref>
      <ref id="ref5">
        <label>5</label>
        <mixed-citation xml:lang="ru">Ткачева В.Э., Маркин А.Н., Пресняков А.Ю. и др. Локальная углекислотная коррозия углеродистых и низколегированных сталей в нефтепромысловых системах // Вестник Технологического университета. 2020. Т. 23. № 12. C. 65-75.</mixed-citation>
        <mixed-citation xml:lang="en">Tkacheva V.E., Markin A.N., Presnyakov A.Y. et al. Localized carbon dioxide (CO2) corrosion of the carbon and low-alloyed steels in oilfield systems. Bulletin of the Technological University. 2020. Vol. 23. N 12, p. 65-75 (in Russian).</mixed-citation>
      </ref>
      <ref id="ref6">
        <label>6</label>
        <mixed-citation xml:lang="ru">Вагапов Р.К., Федотова А.И., Запевалов Д.Н., Стрельникова К.О. Коррозионная агрессивность различных эксплуатационных факторов на углеводородных месторождениях, содержащих диоксид углерода // Вести газовой науки. 2019. № 2 (39). С. 129-135.</mixed-citation>
        <mixed-citation xml:lang="en">Vagapov R.K., Fedotova A.I., Zapevalov D.N., Strelnikova K.O. Corrosion aggressiveness of various operational factors in hydrocarbon deposits containing carbon dioxide. Vesti gazovoy nauki. 2019. N 2 (39), p. 129-135 (in Russian).</mixed-citation>
      </ref>
      <ref id="ref7">
        <label>7</label>
        <mixed-citation xml:lang="ru">Kahyarian A., Nesic S. A New Narrative for CO2 Corrosion of Mild Steel // Journal of the Electrochemical Society. 2019. Vol. 166. № 11. C3048-C3063. DOI: 10.1149/2.0071911jes</mixed-citation>
        <mixed-citation xml:lang="en">Kahyarian A., Nesic S. A New Narrative for CO2 Corrosion of Mild Steel. Journal of the Electrochemical Society. 2019. Vol. 166. N 11. C3048-C3063. DOI: 10.1149/2.0071911jes</mixed-citation>
      </ref>
      <ref id="ref8">
        <label>8</label>
        <mixed-citation xml:lang="ru">Ting Yan, Liang-Chen Xu, Zhuo-Xiong Zeng, Wei-Guo Pan. Mechanism and anti-corrosion measures of carbon dioxide corrosion in CCUS: A review // iScience. 2024. Vol. 27. Iss. 1. № 108594. DOI: 10.1016/j.isci.2023.108594</mixed-citation>
        <mixed-citation xml:lang="en">Ting Yan, Liang-Chen Xu, Zhuo-Xiong Zeng, Wei-Guo Pan. Mechanism and anti-corrosion measures of carbon dioxide corrosion in CCUS: A review. iScience. 2024. Vol. 27. Iss. 1. N 108594. DOI: 10.1016/j.isci.2023.108594</mixed-citation>
      </ref>
      <ref id="ref9">
        <label>9</label>
        <mixed-citation xml:lang="ru">Ильинова А.А., Ромашева Н.В., Стройков Г.А. Перспективы и общественные эффекты проектов секвестрации и использования углекислого газа // Записки Горного института. 2020. Т. 244. С. 493-502. DOI: 10.31897/PMI.2020.4.12</mixed-citation>
        <mixed-citation xml:lang="en">Ilinova А.А., Romasheva N.V., Stroykov G.A. Prospects and social effects of carbon dioxide sequestration and utilization projects. Journal of Mining Institute. 2020. Vol. 244, p. 493-502. DOI: 10.31897/PMI.2020.4.12</mixed-citation>
      </ref>
      <ref id="ref10">
        <label>10</label>
        <mixed-citation xml:lang="ru">Askari M., Aliofkhazraei M., Jafari R. et al. Downhole corrosion inhibitors for oil and gas production – a review // Applied Surface Science Advances. 2021. Vol. 6. № 100128. DOI: 10.1016/j.apsadv.2021.100128</mixed-citation>
        <mixed-citation xml:lang="en">Askari M., Aliofkhazraei M., Jafari R. et al. Downhole corrosion inhibitors for oil and gas production – a review. Applied Surface Science Advances. 2021. Vol. 6. N 100128. DOI: 10.1016/j.apsadv.2021.100128</mixed-citation>
      </ref>
      <ref id="ref11">
        <label>11</label>
        <mixed-citation xml:lang="ru">Петрова Т.А., Епишина А.Д. Антикоррозионная защита трубопроводного транспорта на горно-перерабатывающих предприятиях // Обогащение руд. 2023. № 6. С. 52-58. DOI: 10.17580/or.2023.06.09</mixed-citation>
        <mixed-citation xml:lang="en">Petrova T.A., Epishina A.D. Anti-corrosion protection of pipelines at mining and processing enterprises. Obogashchenie rud. 2023. N 6, p. 52-58. DOI: 10.17580/or.2023.06.09</mixed-citation>
      </ref>
      <ref id="ref12">
        <label>12</label>
        <mixed-citation xml:lang="ru">Шапошников Н.О., Голубев И.А., Хоробров С.В. и др. Автоклавное моделирование коррозионных процессов, происходящих в газопроводе при транспортировке неподготовленной многофазной среды, содержащей CO2 // Записки Горного института. 2022. Т. 258. С. 915-923. DOI: 10.31897/PMI.2022.92</mixed-citation>
        <mixed-citation xml:lang="en">Shaposhnikov N.О., Golubev I.А., Khorobrov S.V. et al. Autoclave modeling of corrosion processes occurring in a gas pipeline during transportation of an unprepared multi-phase medium containing CO2. Journal of Mining Institute. 2022. Vol. 258, p. 915-923. DOI: 10.31897/PMI.2022.92</mixed-citation>
      </ref>
      <ref id="ref13">
        <label>13</label>
        <mixed-citation xml:lang="ru">Аминова Д.Ф., Валиахметов Р.И. Повышение эффективности защиты промысловых трубопроводов с использованием ингибиторной защиты // Транспорт и хранение нефтепродуктов и углеводородного сырья. 2021. № 1. С. 58-61. DOI: 10.24412/0131-4270-2021-1-58-61</mixed-citation>
        <mixed-citation xml:lang="en">Aminova D.F., Valiakhmetov R.I. Improving the efficiency of field pipeline protection using inhibitory protection. Transport and Storage of Oil Products and Hydrocarbon Materials. 2021. N 1, p. 58-61 (in Russian). DOI: 10.24412/0131-4270-2021-1-58-61</mixed-citation>
      </ref>
      <ref id="ref14">
        <label>14</label>
        <mixed-citation xml:lang="ru">Вагапов Р.К., Запевалов Д.Н. Критерии оценки коррозионной опасности и эффективности ингибиторной защиты при эксплуатации объектов добычи газа в присутствии диоксида углерода // Наука и техника в газовой промышленности. 2020. № 2 (82). С. 60-70.</mixed-citation>
        <mixed-citation xml:lang="en">Vagapov R.K., Zapevalov D.N. Criteria for assessing the corrosion hazard and effectiveness of inhibitory protection during operation of gas production facilities in the presence of carbon dioxide. Nauka i tekhnika v gazovoi promyshlennosti. 2020. N 2 (82), p. 60-70 (in Russian).</mixed-citation>
      </ref>
      <ref id="ref15">
        <label>15</label>
        <mixed-citation xml:lang="ru">Kulakov P.A., Rubtsov A.V., Afanasenko V.G. et al. Influence of technical condition parameters on the residual resource of capacitive equipment // Journal of Physics: Conference Series. 2019. Vol. 1399. Iss. 5. № 055052. DOI: 10.1088/1742-6596/1399/5/055052</mixed-citation>
        <mixed-citation xml:lang="en">Kulakov P.A., Rubtsov A.V., Afanasenko V.G. et al. Influence of technical condition parameters on the residual resource of capacitive equipment. Journal of Physics: Conference Series. 2019. Vol. 1399. Iss. 5. N 055052. DOI: 10.1088/1742-6596/1399/5/055052</mixed-citation>
      </ref>
      <ref id="ref16">
        <label>16</label>
        <mixed-citation xml:lang="ru">Verma D.K., Dewangan Y., Dewangan A.K., Asatkar A. Heteroatom-Based Compounds as Sustainable Corrosion Inhibitors: An Overview // Journal of Bio- and Tribo-Corrosion. 2021. Vol. 7. Iss. 1. № 15. DOI: 10.1007/s40735-020-00447-7</mixed-citation>
        <mixed-citation xml:lang="en">Verma D.K., Dewangan Y., Dewangan A.K., Asatkar A. Heteroatom-Based Compounds as Sustainable Corrosion Inhibitors: An Overview. Journal of Bio- and Tribo-Corrosion. 2021. Vol. 7. Iss. 1. N 15. DOI: 10.1007/s40735-020-00447-7</mixed-citation>
      </ref>
      <ref id="ref17">
        <label>17</label>
        <mixed-citation xml:lang="ru">Winkler D.A., Hughes A.E., Özkan C. et al. Impact of inhibition mechanisms, automation, and computational models on the discovery of organic corrosion inhibitors // Progress in Materials Science. 2025. Vol. 149. № 101392. DOI: 10.1016/j.pmatsci.2024.101392</mixed-citation>
        <mixed-citation xml:lang="en">Winkler D.A., Hughes A.E., Özkan C. et al. Impact of inhibition mechanisms, automation, and computational models on the discovery of organic corrosion inhibitors. Progress in Materials Science. 2025. Vol. 149. N 101392. DOI: 10.1016/j.pmatsci.2024.101392</mixed-citation>
      </ref>
      <ref id="ref18">
        <label>18</label>
        <mixed-citation xml:lang="ru">Junying Hu, Qi Xiong, Longjun Chen et al. Corrosion inhibitor in CO2-O2-containing environment: Inhibition effect and mechanisms of Bis(2-ehylhexyl) phosphate for the corrosion of carbon steel // Corrosion Science. 2021. Vol. 179. № 109173. DOI: 10.1016/j.corsci.2020.109173</mixed-citation>
        <mixed-citation xml:lang="en">Junying Hu, Qi Xiong, Longjun Chen et al. Corrosion inhibitor in CO2-O2-containing environment: Inhibition effect and mechanisms of Bis(2-ehylhexyl) phosphate for the corrosion of carbon steel. Corrosion Science. 2021. Vol. 179. N 109173. DOI: 10.1016/j.corsci.2020.109173</mixed-citation>
      </ref>
      <ref id="ref19">
        <label>19</label>
        <mixed-citation xml:lang="ru">Wysocka J., Cieslik M., Krakowiak S., Ryl J. Carboxylic acids as efficient corrosion inhibitors of aluminium alloys in alkaline media // Electrochimica Acta. 2018. Vol. 289. P. 175-192. DOI: 10.1016/j.electacta.2018.08.070</mixed-citation>
        <mixed-citation xml:lang="en">Wysocka J., Cieslik M., Krakowiak S., Ryl J. Carboxylic acids as efficient corrosion inhibitors of aluminium alloys in alkaline media. Electrochimica Acta. 2018. Vol. 289, p. 175-192. DOI: 10.1016/j.electacta.2018.08.070</mixed-citation>
      </ref>
      <ref id="ref20">
        <label>20</label>
        <mixed-citation xml:lang="ru">Hamadi L., Mansouri S., Oulmi K., Kareche A. The use of amino acids as corrosion inhibitors for metals: A review // Egyptian Journal of Petroleum. 2018. Vol. 27. Iss. 4. P. 1157-1165. DOI: 10.1016/j.ejpe.2018.04.004</mixed-citation>
        <mixed-citation xml:lang="en">Hamadi L., Mansouri S., Oulmi K., Kareche A. The use of amino acids as corrosion inhibitors for metals: A review. Egyptian Journal of Petroleum. 2018. Vol. 27. Iss. 4, p. 1157-1165. DOI: 10.1016/j.ejpe.2018.04.004</mixed-citation>
      </ref>
      <ref id="ref21">
        <label>21</label>
        <mixed-citation xml:lang="ru">Патент № 2351690 РФ. Способ ингибирования углекислотной коррозии железа / В.С.Резник, Ю.П.Ходырев, В.Д.Акамсин, Р.М.Галиакберов, Р.Х.Гиниятуллин, В.Э.Семенов, И.В.Галяметдинова. Опубл. 10.04.2009. Бюл. № 10.</mixed-citation>
        <mixed-citation xml:lang="en">Reznik V.S., Khodyrev J.P., Akamsin V.D., Galiakberov R.M., Ginijatullin R.K., Semenov V.E., Galjametdinova I.V. Patent N 2351690 RF. Method of sweet iron corrosion inhibition. Publ. 10.04.2009. Bul. N 10 (in Russian). </mixed-citation>
      </ref>
      <ref id="ref22">
        <label>22</label>
        <mixed-citation xml:lang="ru">Yuanqiang Zhu, Qingqing Sun, Yuan Wang et al. A Study on Inhibition Performance of Mercaptoalcohols As Corrosion Inhibitors by First Principle and Molecular Dynamics Simulation // Russian Journal of Physical Chemistry A. 2020. Vol. 94. № 9. P. 1877-1886. DOI: 10.1134/S0036024420090356</mixed-citation>
        <mixed-citation xml:lang="en">Yuanqiang Zhu, Qingqing Sun, Yuan Wang et al. A Study on Inhibition Performance of Mercaptoalcohols As Corrosion Inhibitors by First Principle and Molecular Dynamics Simulation. Russian Journal of Physical Chemistry A. 2020. Vol. 94. N 9, p. 1877-1886. DOI: 10.1134/S0036024420090356</mixed-citation>
      </ref>
      <ref id="ref23">
        <label>23</label>
        <mixed-citation xml:lang="ru">Патент № 2430997 РФ. Ингибитор коррозии / Н.Г.Зубрицкая, А.Е.Бальцер, А.Г.Базанов, Т.Г.Бабенко, Т.В.Иванова, И.В.Шукан, Е.Н.Барскова, А.В.Громов, А.Н.Подобаев, И.И.Реформатская, И.И.Ащеулова. Опубл. 10.10.2011. Бюл. № 28.</mixed-citation>
        <mixed-citation xml:lang="en">Zubritskaja N.G., Baltser A.E., Bazanov A.G., Babenko T.G., Ivanova T.V., Shukan I.V., Barskova E.N., Gromov A.V., Podobaev A.N., Reformatskaja I.I., Ashcheulova I.I. Patent N 2430997 RF. Corrosion Inhibitor. Publ. 10.10.2011. Bul. N 28 (in Russian).</mixed-citation>
      </ref>
      <ref id="ref24">
        <label>24</label>
        <mixed-citation xml:lang="ru">El Ibrahimi B., Jmiai A., Bazzi L., El Issami S. Amino acids and their derivatives as corrosion inhibitors for metals and alloys // Arabian Journal of Chemistry. 2020. Vol. 13. Iss. 1. P. 740-771. DOI: 10.1016/j.arabjc.2017.07.013</mixed-citation>
        <mixed-citation xml:lang="en">El Ibrahimi B., Jmiai A., Bazzi L., El Issami S. Amino acids and their derivatives as corrosion inhibitors for metals and alloys. Arabian Journal of Chemistry. 2020. Vol. 13. Iss. 1, p. 740-771. DOI: 10.1016/j.arabjc.2017.07.013</mixed-citation>
      </ref>
      <ref id="ref25">
        <label>25</label>
        <mixed-citation xml:lang="ru">Мамедова Н.А., Мамедханова С.А., Шахмамедова А.Г. Синтез и применение солей и комплексов на основе аллилового эфира нефтяных кислот в качестве ингибиторов углекислотной коррозии // Нефтехимия. 2019. Т. 59. № 2. C. 207-213. DOI: 10.1134/S0028242119020114</mixed-citation>
        <mixed-citation xml:lang="en">Mamedova N.A., Mamedkhanova S.A., Shakhmamedova A.G. The Synthesis and Application of Salts and Complexes on the Basis of Petroleum Acid Allyl Ester as Carbon Dioxide Corrosion Inhibitors. Petroleum Chemistry. 2019. Vol. 59. N 2, p. 213-219. DOI: 10.1134/S0028242119020114</mixed-citation>
      </ref>
      <ref id="ref26">
        <label>26</label>
        <mixed-citation xml:lang="ru">Belarbi Z., Dominguez Olivo J.M., Farelas F. et al. Decanethiol as a Corrosion Inhibitor for Carbon Steels Exposed to Aqueous CO2 // Corrosion. 2019. Vol. 75. Iss. 10. P. 1246-1254. DOI: 10.5006/3233</mixed-citation>
        <mixed-citation xml:lang="en">Belarbi Z., Dominguez Olivo J.M., Farelas F. et al. Decanethiol as a Corrosion Inhibitor for Carbon Steels Exposed to Aqueous CO2. Corrosion. 2019. Vol. 75. Iss. 10, p. 1246-1254. DOI: 10.5006/3233</mixed-citation>
      </ref>
      <ref id="ref27">
        <label>27</label>
        <mixed-citation xml:lang="ru">Young Soo Ahn, Jovancicevic V. Patent № WO 01/12878 A1. Mercaptoalcohol corrosion inhibitors. Publ. 22.02.2001.</mixed-citation>
        <mixed-citation xml:lang="en">Young Soo Ahn, Jovancicevic V. Patent N WO 01/12878 A1. Mercaptoalcohol corrosion inhibitors. Publ. 22.02.2001.</mixed-citation>
      </ref>
      <ref id="ref28">
        <label>28</label>
        <mixed-citation xml:lang="ru">Monticelli C. Corrosion Inhibitors // Encyclopedia of Interfacial Chemistry: Surface Science and Electrochemistry. Elsevier, 2018. Vol. 6.1: Corrosion and Passivation. P. 164-171. DOI: 10.1016/B978-0-12-409547-2.13443-2</mixed-citation>
        <mixed-citation xml:lang="en">Monticelli C. Corrosion Inhibitors. Encyclopedia of Interfacial Chemistry: Surface Science and Electrochemistry. Elsevier, 2018. Vol. 6.1: Corrosion and Passivation, p. 164-171. DOI: 10.1016/B978-0-12-409547-2.13443-2</mixed-citation>
      </ref>
      <ref id="ref29">
        <label>29</label>
        <mixed-citation xml:lang="ru">Haque J., Jafar Mazumder M.A., Quraishi M.A. et al. Pyrrolidine-based quaternary ammonium salts containing propargyl and hydrophobic C-12 and C-16 alkyl chains as corrosion inhibitors in aqueous acidic media // Journal of Molecular Liquids. 2020. Vol. 320. Part B. № 114473. DOI: 10.1016/j.molliq.2020.114473</mixed-citation>
        <mixed-citation xml:lang="en">Haque J., Jafar Mazumder M.A., Quraishi M.A. et al. Pyrrolidine-based quaternary ammonium salts containing propargyl and hydrophobic C-12 and C-16 alkyl chains as corrosion inhibitors in aqueous acidic media. Journal of Molecular Liquids. 2020. Vol. 320. Part B. N 114473. DOI: 10.1016/j.molliq.2020.114473</mixed-citation>
      </ref>
      <ref id="ref30">
        <label>30</label>
        <mixed-citation xml:lang="ru">Moradighadi N., Lewis S., Dommguez Olivo J.M. et al. Effect of Alkyl Tail Length on CMC and Mitigation Efficiency Using Model Quaternary Ammonium Corrosion Inhibitors // Corrosion, 24-28 March 2019, Nashville, TN, USA. OnePetro, 2019. № NACE-2019-13004.</mixed-citation>
        <mixed-citation xml:lang="en">Moradighadi N., Lewis S., Dommguez Olivo J.M. et al. Effect of Alkyl Tail Length on CMC and Mitigation Efficiency Using Model Quaternary Ammonium Corrosion Inhibitors. Corrosion, 24-28 March 2019, Nashville, TN, USA. OnePetro, 2019. N NACE-2019-13004.</mixed-citation>
      </ref>
      <ref id="ref31">
        <label>31</label>
        <mixed-citation xml:lang="ru">Badeeva E.K., Batyeva E.S., Nizamov I.S. et al. Ammonium salts of O,O’-dialkyldithiophosphoric acids: Effective inhibitors for carbon dioxide corrosion of mild steel on the basis of red phosphorus // Phosphorus, Sulfur, and Silicon and the Related Elements. 2016. Vol. 191. Iss. 11-12. Р. 1640-1641. DOI: 10.1080/10426507.2016.1223662</mixed-citation>
        <mixed-citation xml:lang="en">Badeeva E.K., Batyeva E.S., Nizamov I.S. et al. Ammonium salts of O,O’-dialkyldithiophosphoric acids: Effective inhibitors for carbon dioxide corrosion of mild steel on the basis of red phosphorus. Phosphorus, Sulfur, and Silicon and the Related Elements. 2016. Vol. 191. Iss. 11-12, p. 1640-1641. DOI: 10.1080/10426507.2016.1223662</mixed-citation>
      </ref>
      <ref id="ref32">
        <label>32</label>
        <mixed-citation xml:lang="ru">Porcayo-Calderon J., Martínez de la Escalera L.M., Canto J., Casales-Diaz M. Imidazoline Derivatives Based on Coffee Oil as CO2 Corrosion Inhibitor // International Journal of Electrochemical Science. 2015. Vol. 10. Iss. 4. P. 3160-3176. DOI: 10.1016/S1452-3981(23)06528-8</mixed-citation>
        <mixed-citation xml:lang="en">Porcayo-Calderon J., Martínez de la Escalera L.M., Canto J., Casales-Diaz M. Imidazoline Derivatives Based on Coffee Oil as CO2 Corrosion Inhibitor. International Journal of Electrochemical Science. 2015. Vol. 10. Iss. 4, p. 3160-3176. DOI: 10.1016/S1452-3981(23)06528-8</mixed-citation>
      </ref>
      <ref id="ref33">
        <label>33</label>
        <mixed-citation xml:lang="ru">Sanchez-Salazar E., Vazquez-Velez E., Uruchurtu J. et al. Use of a Gemini-Surfactant Synthesized from the Mango Seed Oil as a CO2-Corrosion Inhibitor for X-120 Steel // Materials. 2021. Vol. 14. Iss. 15. № 4206. DOI: 10.3390/ma14154206</mixed-citation>
        <mixed-citation xml:lang="en">Sanchez-Salazar E., Vazquez-Velez E., Uruchurtu J. et al. Use of a Gemini-Surfactant Synthesized from the Mango Seed Oil as a CO2-Corrosion Inhibitor for X-120 Steel. Materials. 2021. Vol. 14. Iss. 15. N 4206. DOI: 10.3390/ma14154206</mixed-citation>
      </ref>
      <ref id="ref34">
        <label>34</label>
        <mixed-citation xml:lang="ru">Jing-Mao Zhao, Feng Gu, Tong Zhao, Rui-Jing Jiang. Corrosion inhibition performance of imidazoline derivatives with different pedant chains under three flow rates in high-pressure CO2 environment // Research on Chemical Intermediates. 2016. Vol. 42. Iss. 6. P. 5753-5764. DOI: 10.1007/s11164-015-2401-y</mixed-citation>
        <mixed-citation xml:lang="en">Jing-Mao Zhao, Feng Gu, Tong Zhao, Rui-Jing Jiang. Corrosion inhibition performance of imidazoline derivatives with different pedant chains under three flow rates in high-pressure CO2 environment. Research on Chemical Intermediates. 2016. Vol. 42. Iss. 6, p. 5753-5764. DOI: 10.1007/s11164-015-2401-y</mixed-citation>
      </ref>
      <ref id="ref35">
        <label>35</label>
        <mixed-citation xml:lang="ru">Muktiarti N., Ditama I., Soegijono B. Characterization of imidazoline derivates synthesized from soybean oil fatty acids as corrosion inhibitors on mild steel // AIP Conference Proceedings. 2020. Vol. 2242. Iss. 1. № 020023. DOI: 10.1063/5.0007980</mixed-citation>
        <mixed-citation xml:lang="en">Muktiarti N., Ditama I., Soegijono B. Characterization of imidazoline derivates synthesized from soybean oil fatty acids as corrosion inhibitors on mild steel. AIP Conference Proceedings. 2020. Vol. 2242. Iss. 1. N 020023. DOI: 10.1063/5.0007980</mixed-citation>
      </ref>
      <ref id="ref36">
        <label>36</label>
        <mixed-citation xml:lang="ru">Salinas-Solano G., Porcayo-Calderón J., Martínez de la Escalera L.M. et al. Development and evaluation of a green corrosion inhibitor based on rice bran oil obtained from agro-industrial waste // Industrial Crops and Products. 2018. Vol. 119. P. 111-124. DOI: 10.1016/j.indcrop.2018.04.009</mixed-citation>
        <mixed-citation xml:lang="en">Salinas-Solano G., Porcayo-Calderón J., Martínez de la Escalera L.M. et al. Development and evaluation of a green corrosion inhibitor based on rice bran oil obtained from agro-industrial waste. Industrial Crops and Products. 2018. Vol. 119, p. 111-124. DOI: 10.1016/j.indcrop.2018.04.009</mixed-citation>
      </ref>
      <ref id="ref37">
        <label>37</label>
        <mixed-citation xml:lang="ru">Патент № 2756210 РФ. Способ получения ингибитора коррозии на основе полипропиленполиамина и карбоновой кислоты для нефтепромысловых, минерализованных и сероводородсодержащих сред / Р.Н.Загидуллин, А.Г.Мустафин, К.Г.Хусаинова, Т.Т.Садыков. Опубл. 28.09.2021. Бюл. № 28.</mixed-citation>
        <mixed-citation xml:lang="en">Zagidullin R.N., Mustafin A.G., Khusainova K.G., Sadykov T.T. Patent N 2756210 RF. Method for obtaining corrosion inhibitor based on polypropylene polyamine and carboxylic acid for oilfield, mineralized and hydrogen sulfide-containing media. Publ. 28.09.2021. Bul. N 28 (in Russian).</mixed-citation>
      </ref>
      <ref id="ref38">
        <label>38</label>
        <mixed-citation xml:lang="ru">Usman B.J., Ali S.A. Carbon Dioxide Corrosion Inhibitors: A review // Arabian Journal for Science and Engineering. 2018. Vol. 43. Iss. 1. P. 1-22. DOI: 10.1007/s13369-017-2949-5</mixed-citation>
        <mixed-citation xml:lang="en">Usman B.J., Ali S.A. Carbon Dioxide Corrosion Inhibitors: A review. Arabian Journal for Science and Engineering. 2018. Vol. 43. Iss. 1, p. 1-22. DOI: 10.1007/s13369-017-2949-5</mixed-citation>
      </ref>
      <ref id="ref39">
        <label>39</label>
        <mixed-citation xml:lang="ru">Ziqi Zheng, Junying Hu, Noam Eliaz et al. Mercaptopropionic acid-modified oleic imidazoline as a highly efficient corrosion inhibitor for carbon steel in CO2-saturated formation water // Corrosion Science. 2022. Vol. 194. № 109930. DOI: 10.1016/j.corsci.2021.109930</mixed-citation>
        <mixed-citation xml:lang="en">Ziqi Zheng, Junying Hu, Noam Eliaz et al. Mercaptopropionic acid-modified oleic imidazoline as a highly efficient corrosion inhibitor for carbon steel in CO2-saturated formation water. Corrosion Science. 2022. Vol. 194. N 109930. DOI: 10.1016/j.corsci.2021.109930</mixed-citation>
      </ref>
      <ref id="ref40">
        <label>40</label>
        <mixed-citation xml:lang="ru">Yuan Lu, Wei Wang, Chen Zhang, Jingmao Zhao. A Novel Imidazoline Derivative Used as an Effective Corrosion Inhibitor for Carbon Steel in a CO2/H2S Environment // International Journal of Electrochemical Science. 2019. Vol. 14. Iss. 9. P. 8579-8594. DOI: 10.20964/2019.09.06</mixed-citation>
        <mixed-citation xml:lang="en">Yuan Lu, Wei Wang, Chen Zhang, Jingmao Zhao. A Novel Imidazoline Derivative Used as an Effective Corrosion Inhibitor for Carbon Steel in a CO2/H2S Environment. International Journal of Electrochemical Science. 2019. Vol. 14. Iss. 9, p. 8579-8594. DOI: 10.20964/2019.09.06</mixed-citation>
      </ref>
      <ref id="ref41">
        <label>41</label>
        <mixed-citation xml:lang="ru">Yuanqiang Zhu, Shidong Qu, Yang Shen et al. Investigation on the synergistic effects and mechanism of oleic imidazoline and mercaptoethanol corrosion inhibitors by experiment and molecular dynamic simulation // Journal of Molecular Structure. 2023. Vol. 1274. Part 2. № 134512. DOI: 10.1016/j.molstruc.2022.134512</mixed-citation>
        <mixed-citation xml:lang="en">Yuanqiang Zhu, Shidong Qu, Yang Shen et al. Investigation on the synergistic effects and mechanism of oleic imidazoline and mercaptoethanol corrosion inhibitors by experiment and molecular dynamic simulation. Journal of Molecular Structure. 2023. Vol. 1274. Part 2. N 134512. DOI: 10.1016/j.molstruc.2022.134512</mixed-citation>
      </ref>
      <ref id="ref42">
        <label>42</label>
        <mixed-citation xml:lang="ru">Патент № 2769118 РФ. Ингибитор коррозии / А.И.Захаров, А.О.Демьянченко, А.А.Шевнин. Опубл. 28.03.2022. Бюл. № 10.</mixed-citation>
        <mixed-citation xml:lang="en">Zakharov A.I., Demianchenko A.O., Shevnin A.A. Patent N 2769118 RF. Corrosion inhibitor. Publ. 28.03.2022. Bul. N 10 (in Russian).</mixed-citation>
      </ref>
      <ref id="ref43">
        <label>43</label>
        <mixed-citation xml:lang="ru">Amir Shamsa, Richard Barker, Yong Hua et al. Impact of corrosion products on performance of imidazoline corrosion inhibitor on X65 carbon steel in CO2 environments // Corrosion Science. 2021. Vol. 185. № 109423. DOI: 10.1016/j.corsci.2021.109423</mixed-citation>
        <mixed-citation xml:lang="en">Amir Shamsa, Richard Barker, Yong Hua et al. Impact of corrosion products on performance of imidazoline corrosion inhibitor on X65 carbon steel in CO2 environments. Corrosion Science. 2021. Vol. 185. N 109423. DOI: 10.1016/j.corsci.2021.109423</mixed-citation>
      </ref>
      <ref id="ref44">
        <label>44</label>
        <mixed-citation xml:lang="ru">Yi He, Yanqiu Zhou, Ranran Yang et al. Imidazoline derivative with four imidazole reaction centers as an efficient corrosion inhibitor for anti-CO2 corrosion // Russian Journal of Applied Chemistry. 2015. Vol. 88. № 7. P. 1192-1200. DOI: 10.1134/S1070427215070149</mixed-citation>
        <mixed-citation xml:lang="en">Yi He, Yanqiu Zhou, Ranran Yang et al. Imidazoline derivative with four imidazole reaction centers as an efficient corrosion inhibitor for anti-CO2 corrosion. Russian Journal of Applied Chemistry. 2015. Vol. 88. N 7, p. 1192-1200. DOI: 10.1134/S1070427215070149</mixed-citation>
      </ref>
      <ref id="ref45">
        <label>45</label>
        <mixed-citation xml:lang="ru">Yue Meng, Wenbo Ning, Bin Xu et al. Inhibition of mild steel corrosion in hydrochloric acid using two novel pyridine Schiff base derivatives: a comparative study of experimental and theoretical results // RSC Advances. 2017. Vol. 7. Iss. 68. P. 43014-43029. DOI: 10.1039/c7ra08170g</mixed-citation>
        <mixed-citation xml:lang="en">Yue Meng, Wenbo Ning, Bin Xu et al. Inhibition of mild steel corrosion in hydrochloric acid using two novel pyridine Schiff base derivatives: a comparative study of experimental and theoretical results. RSC Advances. 2017. Vol. 7. Iss. 68, p. 43014-43029. DOI: 10.1039/c7ra08170g</mixed-citation>
      </ref>
      <ref id="ref46">
        <label>46</label>
        <mixed-citation xml:lang="ru">Onyeachu I.B., Quraishi M.A., Obot I.B., Haque J. Newly synthesized pyrimidine compound as CO2 corrosion inhibitor for steel in highly aggressive simulated oilfield brine // Journal of Adhesion Science and Technology. 2019. Vol. 33. Iss. 11. P. 1226-1247. DOI: 10.1080/01694243.2019.1585029</mixed-citation>
        <mixed-citation xml:lang="en">Onyeachu I.B., Quraishi M.A., Obot I.B., Haque J. Newly synthesized pyrimidine compound as CO2 corrosion inhibitor for steel in highly aggressive simulated oilfield brine. Journal of Adhesion Science and Technology. 2019. Vol. 33. Iss. 11, p. 1226-1247. DOI: 10.1080/01694243.2019.1585029</mixed-citation>
      </ref>
      <ref id="ref47">
        <label>47</label>
        <mixed-citation xml:lang="ru">Arafin M.A., Szpunar J.A. A new understanding of intergranular stress corrosion cracking resistance of pipeline steel through grain boundary character and crystallographic texture studies // Corrosion Science. 2009. Vol. 51. Iss. 1. P. 119-128. DOI: 10.1016/J.CORSCI.2008.10.006</mixed-citation>
        <mixed-citation xml:lang="en">Arafin M.A., Szpunar J.A. A new understanding of intergranular stress corrosion cracking resistance of pipeline steel through grain boundary character and crystallographic texture studies. Corrosion Science. 2009. Vol. 51. Iss. 1, p. 119-128. DOI: 10.1016/J.CORSCI.2008.10.006</mixed-citation>
      </ref>
      <ref id="ref48">
        <label>48</label>
        <mixed-citation xml:lang="ru">Tiu B.D.B., Advincula R.C. Polymeric corrosion inhibitors for the oil and gas industry: Design principles and mechanism // Reactive and Functional Polymers. 2015. Vol. 95. P. 25-45. DOI: 10.1016/j.reactfunctpolym.2015.08.006</mixed-citation>
        <mixed-citation xml:lang="en">Tiu B.D.B., Advincula R.C. Polymeric corrosion inhibitors for the oil and gas industry: Design principles and mechanism. Reactive and Functional Polymers. 2015. Vol. 95, p. 25-45. DOI: 10.1016/j.reactfunctpolym.2015.08.006</mixed-citation>
      </ref>
      <ref id="ref49">
        <label>49</label>
        <mixed-citation xml:lang="ru">Azzam E.M.S., Abd El-Salam H.M., Mohamed R.A. et al. Control the corrosion of mild steel using synthesized polymers based on polyacrylamide // Egyptian Journal of Petroleum. 2018. Vol. 27. Iss. 4. P. 897-910. DOI: 10.1016/j.ejpe.2018.01.006</mixed-citation>
        <mixed-citation xml:lang="en">Azzam E.M.S., Abd El-Salam H.M., Mohamed R.A. et al. Control the corrosion of mild steel using synthesized polymers based on polyacrylamide. Egyptian Journal of Petroleum. 2018. Vol. 27. Iss. 4, p. 897-910. DOI: 10.1016/j.ejpe.2018.01.006</mixed-citation>
      </ref>
      <ref id="ref50">
        <label>50</label>
        <mixed-citation xml:lang="ru">Tianqi Chen, Zhan Chen, Mengjin Chen, Chaoyang Fu. Evaluation of anti-corrosion performance of poly(maleic acid-co-N‐[3‐(dimethylamino)propyl]‐methacrylamide) as novel copolymer inhibitor for carbon steel in neutral medium // Journal of Molecular Liquids. 2021. Vol. 338. № 116638. DOI: 10.1016/j.molliq.2021.116638</mixed-citation>
        <mixed-citation xml:lang="en">Tianqi Chen, Zhan Chen, Mengjin Chen, Chaoyang Fu. Evaluation of anti-corrosion performance of poly(maleic acid-co-N‐[3-(dimethylamino)propyl]‐methacrylamide) as novel copolymer inhibitor for carbon steel in neutral medium. Journal of Molecular Liquids. 2021. Vol. 338. N 116638. DOI: 10.1016/j.molliq.2021.116638</mixed-citation>
      </ref>
      <ref id="ref51">
        <label>51</label>
        <mixed-citation xml:lang="ru">Al-Shihry S.S., Sayed A.R., El-Lateef H.M.A. Design and assessment of a novel poly(urethane-semicarbazides) containing thiadiazoles on the backbone of the polymers as inhibitors for steel pipelines corrosion in CO2-saturated oilfield water // Journal of Molecular Structure. 2020. Vol. 1201. № 127223. DOI: 10.1016/j.molstruc.2019.127223</mixed-citation>
        <mixed-citation xml:lang="en">Al-Shihry S.S., Sayed A.R., El-Lateef H.M.A. Design and assessment of a novel poly(urethane-semicarbazides) containing thiadiazoles on the backbone of the polymers as inhibitors for steel pipelines corrosion in CO2-saturated oilfield water. Journal of Molecular Structure. 2020. Vol. 1201. N 127223. DOI: 10.1016/j.molstruc.2019.127223</mixed-citation>
      </ref>
      <ref id="ref52">
        <label>52</label>
        <mixed-citation xml:lang="ru">Umoren S., Solomon M.M., Israel A.U. et al. Comparative Study of the Corrosion Inhibition Efficacy of Polypropylene Glycol and Poly (Methacrylic Acid) for Mild Steel in Acid Solution // Journal of Dispersion Science and Technology. 2015. Vol. 36. P. 1721-1735. DOI: 10.1080/01932691.2015.1004411</mixed-citation>
        <mixed-citation xml:lang="en">Umoren S., Solomon M.M., Israel A.U. et al. Comparative Study of the Corrosion Inhibition Efficacy of Polypropylene Glycol and Poly (Methacrylic Acid) for Mild Steel in Acid Solution. Journal of Dispersion Science and Technology. 2015. Vol. 36, p. 1721-1735. DOI: 10.1080/01932691.2015.1004411</mixed-citation>
      </ref>
      <ref id="ref53">
        <label>53</label>
        <mixed-citation xml:lang="ru">Sun A., Cui G., Liu Q. Capsule corrosion inhibitor loaded with hyperbranched chitosan: Carbon dioxide corrosion protection for downhole pipelines in oil fields // Colloids and Surfaces A: Physicochemical and Engineering Aspects. 2023. Vol. 664. № 131106. DOI: 10.1016/j.colsurfa.2023.131106</mixed-citation>
        <mixed-citation xml:lang="en">Sun A., Cui G., Liu Q. Capsule corrosion inhibitor loaded with hyperbranched chitosan: Carbon dioxide corrosion protection for downhole pipelines in oil fields. Colloids and Surfaces A: Physicochemical and Engineering Aspects. 2023. Vol. 664. N 131106. DOI: 10.1016/j.colsurfa.2023.131106</mixed-citation>
      </ref>
      <ref id="ref54">
        <label>54</label>
        <mixed-citation xml:lang="ru">Джанелидзе С.З., Журавлев В.В., Жуков А.Ю. и др. Борьба с солеотложением на добывающих скважинах «Газпромнефть-Востока»: результаты опытно-промысловых испытаний и технико-экономическая оценка применения капсулированного ингибитора // PROнефть. Профессионально о нефти. 2021. Т. 6. № 1. С. 94-101. DOI: 10.51890/2587-7399-2021-6-1-94-101</mixed-citation>
        <mixed-citation xml:lang="en">Dzhanelidze S.Z., Zhuravlev V.V., Zhukov A.Yu. et al. Scale control at production wells of Gazpromneft Vostok LLC: results of field tests and technical and economic assessment of the use of encapsulated inhibitor. PROneft. Professionally about Oil. 2021. Vol. 6. N 1, p. 95-101. DOI: 10.51890/2587-7399-2021-6-1-94-101</mixed-citation>
      </ref>
      <ref id="ref55">
        <label>55</label>
        <mixed-citation xml:lang="ru">Salleh S.Z., Yusoff A.H., Zakaria S.K. et al. Plant extracts as green corrosion inhibitor for ferrous metal alloys: A review // Journal of Cleaner Production. 2021. Vol. 304. № 127030. DOI: 10.1016/j.jclepro.2021.127030</mixed-citation>
        <mixed-citation xml:lang="en">Salleh S.Z., Yusoff A.H., Zakaria S.K. et al. Plant extracts as green corrosion inhibitor for ferrous metal alloys: A review. Journal of Cleaner Production. 2021. Vol. 304. N 127030. DOI: 10.1016/j.jclepro.2021.127030</mixed-citation>
      </ref>
      <ref id="ref56">
        <label>56</label>
        <mixed-citation xml:lang="ru">Popoola L.T. Organic green corrosion inhibitors (OGCIs): a critical review // Corrosion Reviews. 2019. Vol. 37. Iss. 2. P. 71-102. DOI: 10.1515/corrrev-2018-0058</mixed-citation>
        <mixed-citation xml:lang="en">Popoola L.T. Organic green corrosion inhibitors (OGCIs): a critical review. Corrosion Reviews. 2019. Vol. 37. Iss. 2, p. 71-102. DOI: 10.1515/corrrev-2018-0058</mixed-citation>
      </ref>
      <ref id="ref57">
        <label>57</label>
        <mixed-citation xml:lang="ru">Reza N.A., Akhmal N.H., Fadil N.A., Taib M.F.M. A Review on Plants and Biomass Wastes as Organic Green Corrosion Inhibitors for Mild Steel in Acidic Environment // Metals. 2021. Vol. 11. Iss. 7. № 1062. DOI: 10.3390/met11071062</mixed-citation>
        <mixed-citation xml:lang="en">Reza N.A., Akhmal N.H., Fadil N.A., Taib M.F.M. A Review on Plants and Biomass Wastes as Organic Green Corrosion Inhibitors for Mild Steel in Acidic Environment. Metals. 2021. Vol. 11. Iss. 7. N 1062. DOI: 10.3390/met11071062</mixed-citation>
      </ref>
      <ref id="ref58">
        <label>58</label>
        <mixed-citation xml:lang="ru">Shahini M.H., Ramezanzadeh B., Eivaz Mohammadloo H. Recent advances in biopolymers/carbohydrate polymers as effective corrosion inhibitive macro-molecules: A review study from experimental and theoretical views // Journal of Molecular Liquids. 2021. Vol. 325. № 115110. DOI: 10.1016/j.molliq.2020.115110</mixed-citation>
        <mixed-citation xml:lang="en">Shahini M.H., Ramezanzadeh B., Eivaz Mohammadloo H. Recent advances in biopolymers/carbohydrate polymers as effective corrosion inhibitive macro-molecules: A review study from experimental and theoretical views. Journal of Molecular Liquids. 2021. Vol. 325. N 115110. DOI: 10.1016/j.molliq.2020.115110</mixed-citation>
      </ref>
      <ref id="ref59">
        <label>59</label>
        <mixed-citation xml:lang="ru">de Haro J.C., Magagnin L., Turri S., Griffini G. Lignin-Based Anticorrosion Coatings for the Protection of Aluminum Surfaces // ACS Sustainable Chemistry &amp; Engineering. 2019. Vol. 7. Iss. 6. P. 6213-6222. DOI: 10.1021/acssuschemeng.8b06568</mixed-citation>
        <mixed-citation xml:lang="en">de Haro J.C., Magagnin L., Turri S., Griffini G. Lignin-Based Anticorrosion Coatings for the Protection of Aluminum Surfaces. ACS Sustainable Chemistry &amp; Engineering. 2019. Vol. 7. Iss. 6, p. 6213-6222. DOI: 10.1021/acssuschemeng.8b06568</mixed-citation>
      </ref>
      <ref id="ref60">
        <label>60</label>
        <mixed-citation xml:lang="ru">Gowraraju N.D., Jagadeesan S., Ayyasamy K. et al. Adsorption characteristics of Iota-carrageenan and Inulin biopolymers as potential corrosion inhibitors at mild steel/sulphuric acid interface // Journal of Molecular Liquids. 2017. Vol. 232. P. 9-19. DOI: 10.1016/j.molliq.2017.02.054</mixed-citation>
        <mixed-citation xml:lang="en">Gowraraju N.D., Jagadeesan S., Ayyasamy K. et al. Adsorption characteristics of Iota-carrageenan and Inulin biopolymers as potential corrosion inhibitors at mild steel/sulphuric acid interface. Journal of Molecular Liquids. 2017. Vol. 232, p. 9-19. DOI: 10.1016/j.molliq.2017.02.054</mixed-citation>
      </ref>
      <ref id="ref61">
        <label>61</label>
        <mixed-citation xml:lang="ru">Umoren S.A., AlAhmary A.A., Gasem Z.M., Solomon M.M. Evaluation of chitosan and carboxymethyl cellulose as ecofriendly corrosion inhibitors for steel // International Journal of Biological Macromolecules. 2018. Vol. 117. P. 1017-1028. DOI: 10.1016/j.ijbiomac.2018.06.014</mixed-citation>
        <mixed-citation xml:lang="en">Umoren S.A., AlAhmary A.A., Gasem Z.M., Solomon M.M. Evaluation of chitosan and carboxymethyl cellulose as ecofriendly corrosion inhibitors for steel. International Journal of Biological Macromolecules. 2018. Vol. 117, p. 1017-1028. DOI: 10.1016/j.ijbiomac.2018.06.014</mixed-citation>
      </ref>
      <ref id="ref62">
        <label>62</label>
        <mixed-citation xml:lang="ru">Umoren S.A., Eduok U.M. Application of carbohydrate polymers as corrosion inhibitors for metal substrates in different media: A review // Carbohydrate Polymers. 2016. Vol. 140. P. 314-341. DOI: 10.1016/j.carbpol.2015.12.038</mixed-citation>
        <mixed-citation xml:lang="en">Umoren S.A., Eduok U.M. Application of carbohydrate polymers as corrosion inhibitors for metal substrates in different media: A review. Carbohydrate Polymers. 2016. Vol. 140, p. 314-341. DOI: 10.1016/j.carbpol.2015.12.038</mixed-citation>
      </ref>
      <ref id="ref63">
        <label>63</label>
        <mixed-citation xml:lang="ru">Brindha T., Malarvizhi M., Mallika J. Kinetic and thermodynamic adsorption study of mild steel corrosion and inhibition of Azadirachta Indica gum in hydrochloric acid solution // International Journal of Current Research. 2015. Vol. 7. Iss. 9. P. 20510-20518.</mixed-citation>
        <mixed-citation xml:lang="en">Brindha T., Malarvizhi M., Mallika J. Kinetic and thermodynamic adsorption study of mild steel corrosion and inhibition of Azadirachta Indica gum in hydrochloric acid solution. International Journal of Current Research. 2015. Vol. 7. Iss. 9, p. 20510-20518.</mixed-citation>
      </ref>
      <ref id="ref64">
        <label>64</label>
        <mixed-citation xml:lang="ru">Qing Zhao, Jixiang Guo, Guodong Cui et al. Chitosan derivatives as green corrosion inhibitors for P110 steel in a carbon dioxide environment // Colloids and Surfaces B: Biointerfaces. 2020. Vol. 194. № 111150. DOI: 10.1016/j.colsurfb.2020.111150</mixed-citation>
        <mixed-citation xml:lang="en">Qing Zhao, Jixiang Guo, Guodong Cui et al. Chitosan derivatives as green corrosion inhibitors for P110 steel in a carbon dioxide environment. Colloids and Surfaces B: Biointerfaces. 2020. Vol. 194. N 111150. DOI: 10.1016/j.colsurfb.2020.111150</mixed-citation>
      </ref>
    </ref-list>
  </back>
</article>
